A Ho:YAG laser is coupled to a needle tip through a flexible, fiber optic cable for performing endoscopic and arthroscopic surgery.
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1. A method of performing an arthroscopic procedure comprising the steps of:
generating a laser beam having a wavelength of between 1.8 and 2.2 microns; directing the beam into one end of a fiber optic cable, with the other end of the fiber optic cable defining the delivery end thereof; positioning the delivery end of the fiber optic cable adjacent the tissue to be ablated by the laser beam; and irrigating the tissue with a liquid medium as it is being ablated by a laser beam.
4. A method as recited in
5. A method as recited in
6. A method as recited in
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This is a continuation of application Ser. No. 07/418,942 filed on Oct. 6, 1989 abandoned, which was in turn a continuation of application Ser. No. 07/234,307 filed on Aug. 19 1988, abandoned.
This invention relates to endoscopes and more particularly to a mid-infrared laser endoscope for use in performing arthroscopy.
For over fifteen years, laser energy has been used routinely in major and minor surgical procedures. Safety and efficacy have been proven for applications in plastic surgery, dermatology, ophthalmology, otolaryngology, neurological surgery, obstetrics and gynecology, gastroenterology, urology, and general surgery. With the development of rigid and flexible endoscopic surgical techniques, there has been parallel interest in endoscopically-guided laser surgery. In many endoscopic procedures, including arthroscopy, pathological tissue may be confined to relatively inaccessible spaces, and a laser surgery technique would greatly facilitate removal of these lesions.
There are potential advantages to utilizing laser energy for arthroscopic meniscectomy, which has become one of the most frequency performed orthopedic procedures in the United States and Canada. With conventional arthroscopic meniscectomy, the mechanical instrumentation is cumbersome in the rigid confines of the knee, and often causes scuffing or gouging of the articular cartilage. Also, the small instruments used to cut relatively dense tissue have resulted in instrument failure and breakage within the joint during the course of the procedure. Focussing a laser beam between the rigid, confining articular surfaces of the knee permits remote access to torn or degenerated meniscus tissue with a decreased risk of iatrogenic injury to the articular cartilage as seen with the rigid instruments presently employed.
Previously, injuries to and degenerative lesions of the meniscus in the knee were treated by total meniscectomy. Even suspected lesions of the meniscus frequently resulted in total meniscectomy. It has been demonstrated in long term follow-up studies of patients with total meniscectomies, that a premature incidence of degenerative arthritis in the knee occurs. This led to the development of high quality arthroscopes which provide intra-articular illumination via fiber optic light bundles permitting the resection of only the structurally damaged portions of the meniscus. The use of the laser allows for greater ease with a partial meniscectomy procedure which tries to retain a functional peripheral rim of meniscus.
The focus of most laser arthroscopy investigations has been with use of the carbon dioxide laser system. However, the inherent properties of the 10.6μ wavelength lasers have not allowed for development of the carbon dioxide lasers as an effective or convenient laser arthroscopic system. This wavelength cannot be readily transmitted by standard fiber optics. Instead, the system must be used with larger rigid endoscopes. The arthroscopic delivery system must be connected to the laser source through a cumbersome articulated arm which limits the surgical fields that are accessible for treatment. However, experiments have been performed to show that a Nd:YAG laser can be coupled through a fiber optic cable to perform laser surgery on a meniscus.
A significant disadvantage of the carbon dioxide laser for meniscectomy is that its wavelength is not readily transmitted via optical fiber; and since it is readily absorbed by water the surgeon must use gas distention of the joint rather than the safer saline infusion procedure. During a conventional arthroscopic procedure, the joint is distended with a saline solution. All instrumentation and viewing systems are adapted to the fluid environment. Thus, the need to distend the joint with gas for the CO2 laser creates an array of complications and reduces the attractiveness of this laser to the physician. In a gaseous medium, smoking of the tissue during ablation often clouds the viewing lens and requires flushing the joint with saline. When nitrogen is employed, gas reabsorbed by the tissue during the procedure may cause swelling lasting up to one week postoperatively. In addition, maintaining distention of the joint is often difficult if several portholes are employed.
Similarly, Nd:YAG lasers have been tried to perform arthroscopic meniscectomies, but though the 1.064μ laser light is deliverable through standard optical fibers, the meniscus is quite transparent to the Nd:YAG wavelength and much of the energy is not absorbed. Effective ablation of meniscal tissue requires better coupling and a shorter absorption depth than is available from the Nd:YAG laser.
The above and other problems of prior laser endoscopes are overcome by the present invention of a laser endoscope comprising a mid-infrared laser, a semirigid, fiber optic tip, a handle for mounting the tip, and a flexible fiber cable connecting the laser to the tip. In the current embodiment, the laser of choice is a solid state laser with an output between 1.8 and 2.2μ a spectral region characterized by efficient absorption by water and any hydrated biological tissues.
Although the carbon dioxide lasers have been proven safe and effective for partial meniscectomy of the knee, the Ho:YLF (virtually the same laser wavelength as the Ho:YAG) laser has proven to be equivalent, if not superior, to carbon dioxide lasers in both in vitro and in vivo comparative studies. The results of these studies demonstrate that the Ho:YLF and Ho:YAG lasers are capable of producing carbon dioxide laser-like ablation craters in autopsy specimens, bovine meniscus, sclera, and cornea with a substantial equivalence in thermal damage to the surrounding tissue. The major difference between the Ho:YLF laser and the carbon dioxide laser is that the Ho:YLF can produce effective laser ablations in a fluid field instead of a dry field found in the laser delivery of carbon dioxide lasers. The tissue cutting properties, coupled with the ability to transmit laser radiation through a conventional quartz optical fiber, which cannot be accomplished with the carbon dioxide laser, and the ability for laser delivery in a fluid environment show the solid state lasers having a wavelength of 1.8 to 2.2μ to be effective surgical tools.
The foregoing and other objectives, features and advantages of the invention will be more readily understood upon consideration of the following detailed description of certain preferred embodiments of the invention, taken in conjunction with the accompanying drawings.
FIG. 1 is a diagrammatic view, partly in section, of the laser endoscope system according to the invention;
FIG. 2 is an enlarged, vertical sectional view of the needle of the laser endoscope system shown in FIG. 1; and
FIG. 3 is an enlarged detail of FIG. 2.
Referring now to FIG. 1, a holmium:yttrium-aluminum-garnet (Ho:YAG) laser 10 is used as the light source. The laser could be, for example, a Ho:YAG surgical laser (2.1μ wavelength). A focusing lens (not shown) couples the laser energy to a low OH dry silica fiber 12 of suitable core diameter. Such a fiber might be, for example, a 200-600 micron diameter, low-OH, silica optic fiber. It has also been found that at plastic clad silica ("PCS") fiber of the same diameter range is effective. The fiber typically produces no more than a 15% transmission loss over lengths of ten meters. For delivery of laser energy to the tissues, the fiber 12 is mounted in a shaft 16 of suitable gauge, with a surgical handle 14 attached. FIG. 3 illustrates the output tip 20 of the endoscope. As shown therein, the delivery end of the fiber 12 is reduced in diameter and is received in and supported by a fitting 18. The output tip 20 is used in direct or near direct contact with the target tissue. Direct contact maximizes ablation efficiency and minimizes thermal damage to adjacent tissue structures. The tip 20 may be deliberately backed away from the target tissue to obtain a hemostatic effect when desired.
Additionally, beam shaping may be conveniently accomplished by the use of microlens output tips, either comprised of discrete parts or formed from or attached to the output end of the fiber 12. Lenses may be glass or silica or refractory material such as diamond or sapphire to resist erosion during use.
To summarize, the Ho:YAG laser is equivalent in safety and effectiveness to carbon dioxide lasers which have been approved by the FDA for meniscectomy. It has many potential advantages to the carbon dioxide laser for arthroscopic treatment including: 1) readily connects to a standard quartz fiber optic cable which allows for the use of a small, convenient delivery system; 2) the fiber can be placed in direct contact with tissues, enabling the treatment beam to be aimed with great accuracy; 3) the surgeon can readily adapt to the system because it resembles their same familiar tactile systems; 4) the Ho:YAG is effective in a water medium, therefore, fluids may be used to flush the knee rather than various gases, reducing the amount of smoke produced during the procedure which improves visualization and safety; 5) The Ho:YAG laser wavelength is more effective for coagulation than the carbon dioxide wavelength.
While the invention has been described with respect to a Ho:YAG laser source, it should be understood that in other embodiments other solid state laser sources with an output wavelength of between 1.8 and 2.2μ could be used. These lasers exhibit the same tissue ablation effects.
Although the present invention has been shown and described with respect to preferred embodiments, various changes and modifications which are obvious to a person skilled in the art to which the invention pertains are deemed to lie within the spirit and scope of the invention.
Buzawa, David M., Boutacoff, Theodore A., Nelson, Thomas S.
Patent | Priority | Assignee | Title |
10076671, | May 25 2012 | Ojai Retinal Technology, LLC | Apparatus for retina phototherapy |
10117777, | May 25 2012 | Ojai Retinal Technology, LLC | System for neuroprotective therapy for glaucoma |
10219947, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for retina phototherapy |
10238453, | Apr 09 2007 | AngioDynamics, Inc. | Method of making an endovascular laser treatment device for causing closure of a blood vessel |
10238542, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for retina phototherapy |
10245107, | Mar 15 2013 | Cynosure, LLC | Picosecond optical radiation systems and methods of use |
10278863, | Mar 21 2016 | Ojai Retinal Technology, LLC | System and process for treatment of myopia |
10278865, | May 25 2012 | Ojai Retinal Technology, LLC | Process for neuroprotective therapy for glaucoma |
10285757, | Mar 15 2013 | Cynosure, LLC | Picosecond optical radiation systems and methods of use |
10285859, | May 25 2012 | Ojai Retinal Technology, LLC | System for performing retina photostimulation |
10299961, | May 25 2012 | Ojai Retinal Technology, LLC | System for neuroprotective therapy for glaucoma |
10305244, | Apr 18 2012 | Cynosure, LLC | Picosecond laser apparatus and methods for treating target tissues with same |
10307294, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for neuroprotective therapy for glaucoma |
10357398, | Mar 21 2016 | Ojai Retinal Technology, LLC | System and process for treatment of myopia |
10363171, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for retina phototherapy |
10434324, | Apr 22 2005 | Cynosure, LLC | Methods and systems for laser treatment using non-uniform output beam |
10500413, | Jun 19 2002 | PALOMAR MEDICAL TECHNOLOGIES, LLC | Method and apparatus for treatment of cutaneous and subcutaneous conditions |
10531908, | May 25 2012 | Ojai Retinal Technology, LLC | Method for heat treating biological tissues using pulsed energy sources |
10556123, | Jun 19 2002 | PALOMAR MEDICAL TECHNOLOGIES, LLC | Method and apparatus for treatment of cutaneous and subcutaneous conditions |
10581217, | Apr 18 2012 | Cynosure, LLC | Picosecond laser apparatus and methods for treating target tissues with same |
10596389, | May 25 2012 | Ojai Retinal Technology, LLC | Process and system for utilizing energy to treat biological tissue |
10709607, | Mar 21 2016 | Ojai Retinal Technology, LLC | System and process for treatment of myopia |
10709608, | Mar 21 2016 | Ojai Retinal Technology, LLC | System and process for prevention of myopia |
10765478, | Mar 15 2013 | CYNOSURCE, LLC | Picosecond optical radiation systems and methods of use |
10849687, | Aug 02 2006 | Cynosure, LLC | Picosecond laser apparatus and methods for its operation and use |
10874873, | May 25 2012 | Ojai Retinal Technology, LLC | Process utilizing pulsed energy to heat treat biological tissue |
10894169, | May 25 2012 | Ojai Retinal Technology, LLC | System and method for preventing or treating Alzheimer's and other neurodegenerative diseases |
10952901, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for retina phototherapy |
10953241, | May 25 2012 | Ojai Retinal Technology, LLC | Process for providing protective therapy for biological tissues or fluids |
10966785, | Aug 02 2006 | Cynosure, LLC | Picosecond laser apparatus and methods for its operation and use |
11033749, | May 25 2012 | Ojai Retinal Technology, LLC | Process utilizing pulsed energy to heat treat biological tissue |
11077318, | May 25 2012 | Ojai Retinal Technology, LLC | System and process of utilizing energy for treating biological tissue |
11095087, | Apr 18 2012 | Cynosure, LLC | Picosecond laser apparatus and methods for treating target tissues with same |
11369398, | Aug 19 2020 | TAG DREAM MEDICAL LTD. | Hybrid laser cutter |
11418000, | Feb 26 2018 | Cynosure, Inc; Cynosure, LLC | Q-switched cavity dumped sub-nanosecond laser |
11446086, | Mar 15 2013 | Cynosure, LLC | Picosecond optical radiation systems and methods of use |
11576724, | Feb 24 2011 | EXIMO MEDICAL LTD. | Hybrid catheter for vascular intervention |
11638591, | Aug 19 2020 | TAG DREAM MEDICAL LTD. | Hybrid laser cutter |
11664637, | Apr 18 2012 | Cynosure, LLC | Picosecond laser apparatus and methods for treating target tissues with same |
11684420, | May 05 2016 | Eximo Medical LTD | Apparatus and methods for resecting and/or ablating an undesired tissue |
11712299, | Aug 02 2006 | Cynosure, LLC. | Picosecond laser apparatus and methods for its operation and use |
11791603, | Feb 26 2018 | Cynosure, LLC. | Q-switched cavity dumped sub-nanosecond laser |
5295052, | Oct 09 1992 | ARK CLO 2000-1, LIMITED | Light source assembly |
5309330, | Jan 11 1993 | Citation Medical Corporation | Light box |
5352221, | Nov 04 1992 | Guide tip apparatus for laser surgery | |
5364391, | Jun 03 1992 | Laser Industries Ltd. | Laser beam delivery system |
5375132, | May 05 1993 | LUMENIS, LTD | Solid state laser with interleaved output |
5390204, | Sep 25 1992 | BIOLASE, INC | Intracavity modulated pulsed laser with a variably controllable modulation frequency |
5620439, | Jun 06 1995 | Spire Corporation | Catheter and technique for endovascular myocardial revascularization |
5621745, | Sep 25 1992 | BL ACQUISITION CORP | Intracavity modulated pulsed laser and methods of using the same |
5662646, | Nov 04 1992 | Method and apparatus for laser surgery | |
5681282, | Jan 07 1992 | Arthrocare Corporation | Methods and apparatus for ablation of luminal tissues |
5697909, | May 10 1994 | Arthrocare Corporation | Methods and apparatus for surgical cutting |
5746736, | Aug 09 1995 | Lumedics, Ltd.; LUMEDICS, LTD | Cryogenic laser lithotripsy with enhanced light absorption |
5766153, | Jun 02 1995 | Arthrocare Corporation | Methods and apparatus for surgical cutting |
5781574, | May 05 1993 | FUTABA DENSHI KOGYO K K | Liquid circulation system for cooling a laser head |
5807383, | May 13 1996 | United States Surgical Corporation | Lasing device |
5843073, | Jul 13 1985 | CARDIOFOCUS, INC | Infrared laser catheter system |
5871469, | Jan 07 1992 | Arthro Care Corporation | System and method for electrosurgical cutting and ablation |
5888198, | Jan 07 1992 | Arthrocare Corporation | Electrosurgical system for resection and ablation of tissue in electrically conductive fluids |
5891095, | May 10 1993 | Arthrocare Corporation | Electrosurgical treatment of tissue in electrically conductive fluid |
5897549, | Nov 29 1995 | RELIANT TECHNOLOGIES, INC | Transformation of unwanted tissue by deep laser heating of water |
5925033, | Dec 18 1990 | HEALTHCARE FINANCIAL SOLUTIONS, LLC, AS SUCCESSOR AGENT | Method for intra-operative myocardial revascularization |
5947989, | Dec 12 1996 | Edwards Lifesciences Corporation | Method and apparatus for transmyocardial revascularization |
5951541, | Jun 07 1995 | HEALTHCARE FINANCIAL SOLUTIONS, LLC, AS SUCCESSOR AGENT | Channel forming device with a secured distal extremity |
5968039, | Oct 03 1991 | Essential Dental Systems, Inc. | Laser device for performing canal surgery in narrow channels |
5999555, | May 05 1993 | LUMENIS, LTD | Apparatus for combining laser beams |
6024733, | Jan 07 1992 | Arthrocare Corporation | System and method for epidermal tissue ablation |
6039727, | Jun 07 1995 | HEALTHCARE FINANCIAL SOLUTIONS, LLC, AS SUCCESSOR AGENT | Channel forming device with penetration limiter |
6083217, | Nov 29 1995 | RELIANT TECHNOLOGIES, INC | Destruction for unwanted tissue by deep laser heating of water |
6115396, | May 05 1993 | LUMENIS, LTD | Control system for a laser with multiple solid state rods |
6117109, | Nov 25 1997 | Arthrocare Corporation | Systems and methods for electrosurgical incisions on external skin surfaces |
6135996, | Apr 17 1998 | Baxter International, Inc. | Controlled advancement lasing device |
6159203, | Jul 31 1985 | CARDIOFOCUS, INC | Infrared laser catheter system |
6210402, | Nov 22 1995 | Arthrocare Corporation | Methods for electrosurgical dermatological treatment |
6224592, | Jan 07 1992 | Arthrocare Corporation | Systems and methods for electrosurgical tissue treatment in conductive fluid |
6228078, | Nov 22 1995 | Arthrocare Corporation | Methods for electrosurgical dermatological treatment |
6228082, | Nov 25 1997 | Arthrocare Corporation | Systems and methods for electrosurgical treatment of vascular disorders |
6264652, | Nov 25 1997 | Arthro Care Corporation | Electrosurgical systems for treating tissue |
6283955, | May 13 1996 | Edwards Lifesciences Corporation | Laser ablation device |
6287300, | Dec 09 1996 | Tokyo Iken Co., Ltd. | Optical fiber unit for medical examination and treatment and arm device for the optical fiber |
6309387, | Nov 25 1997 | Arthrocare Corporation | Systems and methods for electrosurgical skin resurfacing |
6312408, | Jan 07 1992 | Arthrocare Corporation | Electrosurgical probe for treating tissue in electrically conductive fluid |
6416508, | May 10 1993 | Arthrocare Corporation | Methods for electrosurgical tissue treatment in conductive fluid |
6461350, | Nov 22 1995 | Arthrocare Corporation | Systems and methods for electrosurgical-assisted lipectomy |
6461354, | Nov 22 1995 | Arthrocare Corporation | Systems for electrosurgical dermatological treatment |
6547780, | Jul 31 1985 | CARDIOFOCUS, INC | Infrared laser catheter system |
6607555, | Feb 15 2000 | EVA Corporation | Delivery catheter assembly and method of securing a surgical component to a vessel during a surgical procedure |
6632220, | Jan 07 1992 | Arthrocare Corp. | Systems for electrosurgical tissue treatment in conductive fluid |
6719754, | Nov 22 1995 | Arthrocare Corporation | Methods for electrosurgical assisted lipectomy |
6746447, | May 10 1993 | Arthrocare Corporation | Methods for ablating tissue |
6749604, | May 10 1993 | Arthrocare Corporation | Electrosurgical instrument with axially-spaced electrodes |
6763836, | Jun 02 1998 | Arthrocare Corporation | Methods for electrosurgical tendon vascularization |
6766202, | Aug 30 1999 | Arthrocare Corp. | Systems and methods for intradermal collagen stimulation |
6773431, | Jun 07 1995 | Arthrocare Corporation | Method for epidermal tissue ablation |
6805130, | Jun 02 1998 | Arthrocare Corporation | Methods for electrosurgical tendon vascularization |
6832996, | Jun 07 1995 | Arthrocare Corporation | Electrosurgical systems and methods for treating tissue |
6896672, | Nov 22 1995 | Arthrocare Corporation | Methods for electrosurgical incisions on external skin surfaces |
6896674, | May 10 1993 | Arthrocare Corporation | Electrosurgical apparatus having digestion electrode and methods related thereto |
6920883, | Nov 08 2001 | Arthrocare Corporation; ArthoCare Corporation | Methods and apparatus for skin treatment |
6949096, | Jan 21 1998 | Arthrocare Corporation | Electrosurgical ablation and aspiration apparatus having flow directing feature and methods related thereto |
6960204, | May 10 1993 | Arthrocare Corporation | Electrosurgical method using laterally arranged active electrode |
6991631, | Jun 09 2000 | Arthrocare Corporation | Electrosurgical probe having circular electrode array for ablating joint tissue and systems related thereto |
7094215, | Oct 02 1997 | Arthrocare Corporation | Systems and methods for electrosurgical tissue contraction |
7192428, | Jun 07 1995 | Arthrocare Corporation | Systems for epidermal tissue ablation |
7201750, | Jan 07 1992 | Arthrocare Corporation | System for treating articular cartilage defects |
7217268, | Jun 02 1995 | Arthrocare Corporation | Method for electrosurgical tissue treatment near a patient's heart |
7276063, | Aug 11 1998 | Arthrocare Corporation | Instrument for electrosurgical tissue treatment |
7429260, | Jul 16 1996 | Arthrocare Corporation | Systems and methods for electrosurgical tissue contraction within the spine |
7429262, | Jan 07 1992 | Arthrocare Corporation | Apparatus and methods for electrosurgical ablation and resection of target tissue |
7435247, | Aug 11 1998 | Arthrocare Corporation | Systems and methods for electrosurgical tissue treatment |
7445618, | May 10 1993 | Arthrocare Corporation | Methods for tissue ablation using pulsed energy |
7468059, | Jun 07 1995 | Arthrocare Corporation | System and method for epidermal tissue ablation |
7507236, | Jan 07 1992 | Arthrocare Corporation | System and method for electrosurgical cutting and ablation |
7704249, | May 07 2004 | Arthrocare Corporation | Apparatus and methods for electrosurgical ablation and resection of target tissue |
7758537, | Nov 22 1995 | Arthrocare Corporation | Systems and methods for electrosurgical removal of the stratum corneum |
7819863, | Jan 07 1992 | Arthrocare Corporation | System and method for electrosurgical cutting and ablation |
8012153, | Jul 16 2003 | Arthrocare Corporation | Rotary electrosurgical apparatus and methods thereof |
8317786, | Sep 25 2009 | AthroCare Corporation | System, method and apparatus for electrosurgical instrument with movable suction sheath |
8323279, | Sep 25 2009 | ArthoCare Corporation | System, method and apparatus for electrosurgical instrument with movable fluid delivery sheath |
8355799, | Dec 12 2008 | Arthrocare Corporation | Systems and methods for limiting joint temperature |
8663216, | Aug 11 1998 | Arthrocare Corporation | Instrument for electrosurgical tissue treatment |
8696659, | Apr 30 2010 | Arthrocare Corporation | Electrosurgical system and method having enhanced temperature measurement |
8747400, | Aug 13 2008 | Arthrocare Corporation | Systems and methods for screen electrode securement |
8864754, | Apr 09 2007 | AngioDynamics, Inc.; AngioDynamics, Inc | Device and method for endovascular treatment for causing closure of a blood vessel |
8864755, | Apr 09 2007 | AngioDynamics, Inc. | Device and method for endovascular treatment for causing closure of a blood vessel |
8915948, | Jun 19 2002 | PALOMAR MEDICAL TECHNOLOGIES, LLC | Method and apparatus for photothermal treatment of tissue at depth |
9028536, | Aug 02 2006 | Cynosure, LLC | Picosecond laser apparatus and methods for its operation and use |
9168174, | May 25 2012 | Ojai Retinal Technology, LLC | Process for restoring responsiveness to medication in tissue of living organisms |
9381115, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for retina phototherapy |
9381116, | May 25 2012 | Ojai Retinal Technology, LLC | Subthreshold micropulse laser prophylactic treatment for chronic progressive retinal diseases |
9427602, | May 25 2012 | Ojai Retinal Technology, LLC | Pulsating electromagnetic and ultrasound therapy for stimulating targeted heat shock proteins and facilitating protein repair |
9452008, | Dec 12 2008 | Arthrocare Corporation | Systems and methods for limiting joint temperature |
9526556, | Feb 28 2014 | Arthrocare Corporation | Systems and methods systems related to electrosurgical wands with screen electrodes |
9597142, | Jul 24 2014 | Arthrocare Corporation | Method and system related to electrosurgical procedures |
9649148, | Jul 24 2014 | Arthrocare Corporation | Electrosurgical system and method having enhanced arc prevention |
9780518, | Apr 18 2012 | Cynosure, LLC | Picosecond laser apparatus and methods for treating target tissues with same |
9782562, | Apr 04 2002 | AngioDynamics, Inc. | Venous insufficiency treatment method |
9814513, | Jun 30 2011 | AngioDynamics, Inc. | Endovascular plasma treatment device and method of use |
9962291, | May 25 2012 | Ojai Retinal Technology, LLC | System and process for neuroprotective therapy for glaucoma |
Patent | Priority | Assignee | Title |
4233493, | May 21 1974 | Apparatus for applying intense light radiation to a limited area | |
4330763, | Mar 19 1980 | The United States of America as represented by the Secretary of the Navy | Resonantly pumped mid-ir laser |
4537193, | Oct 28 1982 | HGM MEDICAL LASER SYSTEMS INC | Laser endocoagulator apparatus |
4551129, | Apr 08 1983 | Technique and apparatus for intraocular and microsurgery including lighter-irrigator hypodermic tube | |
4564011, | Mar 22 1982 | Laser optic device and method | |
4608980, | Apr 13 1984 | Osada Electric Co., Ltd. | Laser hand piece |
4627435, | May 14 1983 | HOSKIN, WILLIAM JOHN, LONG BUFTLERS | Surgical knives |
4641912, | Dec 07 1984 | ADVANCED INTERVENTIONAL SYSTEMS, INC , 3180 PULLMAN AVENUE, COSTA MESA, CA , 92626, A CORP OF CA | Excimer laser delivery system, angioscope and angioplasty system incorporating the delivery system and angioscope |
4671273, | Mar 19 1984 | BRUCE, ROBERT A , JR | Laser hand piece, for use in opthalmic, plastic, and ear, nose, and throat surgery |
4693244, | May 22 1984 | Surgical Laser Technologies, Inc. | Medical and surgical laser probe I |
4718417, | Mar 22 1985 | Massachusetts Institute of Technology | Visible fluorescence spectral diagnostic for laser angiosurgery |
4785806, | Jan 08 1987 | Yale University | Laser ablation process and apparatus |
EP214712, | |||
EP248520, | |||
WO8202604, | |||
WO8505263, |
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